Sandbox Reserved 1098: Difference between revisions

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==6HMM==  
==6HMM==  
<StructureSection load='6hmm' size='340' side='right' caption='[[6hmm]]' scene=''>
<StructureSection load='6hmm' size='340' side='right' caption='[[6hmm]]' scene=''>
A enlever quand tout est fini This is a default text for your page ''''''. Click above on '''edit this page''' to modify. Be careful with the &lt; and &gt; signs.
You may include any references to papers as in: the use of JSmol in Proteopedia <ref>DOI 10.1002/ijch.201300024</ref> or to the article describing Jmol <ref>PMID:21638687</ref> to the rescue.


The <scene name='82/829351/6hmm/2'>6HMM protein</scene> is a human[[ poly (ADP-ribose) glycohydrolase]]. It is an enzyme that will catalyze the hydrolysis of glycosides, here more specifically it will produce a free ADP-ribose. This protein is only present when the DNA is damaged. It influences the damaged chromatin through a derepression on a gene promoter. Consequently this protein is quite interesting for biotechnological applications. Indeed, knowing the different pathways and protein interactions leading to DNA damage repair is a meaningful goal in research especially in new cancer therapies.  
The <scene name='82/829351/6hmm/2'>6HMM protein</scene> is a human[[ poly (ADP-ribose) glycohydrolase]]. It is an enzyme that will catalyze the hydrolysis of glycosides, here more specifically it will produce a free ADP-ribose. This protein is only present when the DNA is damaged. It influences the damaged chromatin through a derepression on a gene promoter. Consequently this protein is quite interesting for biotechnological applications. Indeed, knowing the different pathways and protein interactions leading to DNA damage repair is a meaningful goal in research especially in new cancer therapies.  
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=== Structural highlights ===
=== Structural highlights ===
This is a sample scene created with SAT to <scene name="/12/3456/Sample/1">color</scene> by Group, and another to make <scene name="/12/3456/Sample/2">a transparent representation</scene> of the protein. You can make your own scenes on SAT starting from scratch or loading and editing one of these sample scenes.


This protein has four principal domains on a <scene name='82/829351/Single_chain/1'>single peptide chain</scene>: a A-domain, a catalytic domain and two substrate binding domains[http://www.uniprot.org/uniprot/Q86W56].  
This protein has four principal domains on a <scene name='82/829351/Single_chain/1'>single peptide chain</scene>: a A-domain, a catalytic domain and two substrate binding domains[http://www.uniprot.org/uniprot/Q86W56].  
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This protein is 37% <scene name='82/829351/Helix/1'>helical</scene> and 13% <scene name='82/829351/Sheet/1'>beta sheet</scene>, distributed like <scene name='82/829351/Helix_and_beta_sheet/1'>this</scene>. Indeed, it has 25 helices on 198 residues and 23 strands on 74 residues. It has also few 3/10 helices. [http://www.rcsb.org/pdb/explore/remediatedSequence.do?structureId=6HMM]  
This protein is 37% <scene name='82/829351/Helix/1'>helical</scene> and 13% <scene name='82/829351/Sheet/1'>beta sheet</scene>, distributed like <scene name='82/829351/Helix_and_beta_sheet/1'>this</scene>. Indeed, it has 25 helices on 198 residues and 23 strands on 74 residues. It has also few 3/10 helices. [http://www.rcsb.org/pdb/explore/remediatedSequence.do?structureId=6HMM]  
Involving the torsion angles the backbone and the sidechain have to be differentiated. Indeed none residue in the <scene name='82/829351/Mainchain/1'>backbone</scene> does't respect the Ramachandran's angle, whereas in sidechains where 2% of the residues are Ramachandran outliers because they have non-rotameric sidechains. [http://files.rcsb.org/pub/pdb/validation_reports/hm/6hmm/6hmm_full_validation.pdf]
Involving the torsion angles the backbone and the sidechain have to be differentiated. Indeed none residue in the <scene name='82/829351/Mainchain/1'>backbone</scene> does't respect the Ramachandran's angle, whereas in sidechains where 2% of the residues are Ramachandran outliers because they have non-rotameric sidechains. [http://files.rcsb.org/pub/pdb/validation_reports/hm/6hmm/6hmm_full_validation.pdf]
=== Tertiary Structure ===


=== Quaternary Structure ===
=== Quaternary Structure ===

Revision as of 17:56, 12 January 2020

This Sandbox is Reserved from 25/11/2019, through 30/9/2020 for use in the course "Structural Biology" taught by Bruno Kieffer at the University of Strasbourg, ESBS. This reservation includes Sandbox Reserved 1091 through Sandbox Reserved 1115.
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6HMM

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References